KR101847882B1 - Method of controlling the flow rate of a variable capacity hydraulic pump for a construction apparatus - Google Patents

Method of controlling the flow rate of a variable capacity hydraulic pump for a construction apparatus Download PDF

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KR101847882B1
KR101847882B1 KR1020137015265A KR20137015265A KR101847882B1 KR 101847882 B1 KR101847882 B1 KR 101847882B1 KR 1020137015265 A KR1020137015265 A KR 1020137015265A KR 20137015265 A KR20137015265 A KR 20137015265A KR 101847882 B1 KR101847882 B1 KR 101847882B1
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hydraulic pump
flow rate
discharge
operation lever
pressure
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KR20130143604A (en
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신흥주
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볼보 컨스트럭션 이큅먼트 에이비
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B9/00Servomotors with follow-up action, e.g. obtained by feed-back control, i.e. in which the position of the actuated member conforms with that of the controlling member
    • F15B9/02Servomotors with follow-up action, e.g. obtained by feed-back control, i.e. in which the position of the actuated member conforms with that of the controlling member with servomotors of the reciprocatable or oscillatable type
    • F15B9/04Servomotors with follow-up action, e.g. obtained by feed-back control, i.e. in which the position of the actuated member conforms with that of the controlling member with servomotors of the reciprocatable or oscillatable type controlled by varying the output of a pump with variable capacity
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B13/00Details of servomotor systems ; Valves for servomotor systems
    • F15B13/02Fluid distribution or supply devices characterised by their adaptation to the control of servomotors
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F9/00Component parts of dredgers or soil-shifting machines, not restricted to one of the kinds covered by groups E02F3/00 - E02F7/00
    • E02F9/20Drives; Control devices
    • E02F9/22Hydraulic or pneumatic drives
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F9/00Component parts of dredgers or soil-shifting machines, not restricted to one of the kinds covered by groups E02F3/00 - E02F7/00
    • E02F9/20Drives; Control devices
    • E02F9/22Hydraulic or pneumatic drives
    • E02F9/2221Control of flow rate; Load sensing arrangements
    • E02F9/2232Control of flow rate; Load sensing arrangements using one or more variable displacement pumps
    • E02F9/2235Control of flow rate; Load sensing arrangements using one or more variable displacement pumps including an electronic controller
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F9/00Component parts of dredgers or soil-shifting machines, not restricted to one of the kinds covered by groups E02F3/00 - E02F7/00
    • E02F9/20Drives; Control devices
    • E02F9/22Hydraulic or pneumatic drives
    • E02F9/2278Hydraulic circuits
    • E02F9/2285Pilot-operated systems
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F9/00Component parts of dredgers or soil-shifting machines, not restricted to one of the kinds covered by groups E02F3/00 - E02F7/00
    • E02F9/20Drives; Control devices
    • E02F9/22Hydraulic or pneumatic drives
    • E02F9/2278Hydraulic circuits
    • E02F9/2296Systems with a variable displacement pump
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B11/00Servomotor systems without provision for follow-up action; Circuits therefor
    • F15B11/02Systems essentially incorporating special features for controlling the speed or actuating force of an output member
    • F15B11/04Systems essentially incorporating special features for controlling the speed or actuating force of an output member for controlling the speed
    • F15B11/042Systems essentially incorporating special features for controlling the speed or actuating force of an output member for controlling the speed by means in the feed line, i.e. "meter in"
    • F15B11/0423Systems essentially incorporating special features for controlling the speed or actuating force of an output member for controlling the speed by means in the feed line, i.e. "meter in" by controlling pump output or bypass, other than to maintain constant speed
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B13/00Details of servomotor systems ; Valves for servomotor systems
    • F15B13/02Fluid distribution or supply devices characterised by their adaptation to the control of servomotors
    • F15B13/04Fluid distribution or supply devices characterised by their adaptation to the control of servomotors for use with a single servomotor
    • F15B13/042Fluid distribution or supply devices characterised by their adaptation to the control of servomotors for use with a single servomotor operated by fluid pressure
    • F15B13/043Fluid distribution or supply devices characterised by their adaptation to the control of servomotors for use with a single servomotor operated by fluid pressure with electrically-controlled pilot valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/20Fluid pressure source, e.g. accumulator or variable axial piston pump
    • F15B2211/205Systems with pumps
    • F15B2211/2053Type of pump
    • F15B2211/20546Type of pump variable capacity
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/20Fluid pressure source, e.g. accumulator or variable axial piston pump
    • F15B2211/255Flow control functions
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/60Circuit components or control therefor
    • F15B2211/63Electronic controllers
    • F15B2211/6303Electronic controllers using input signals
    • F15B2211/6306Electronic controllers using input signals representing a pressure
    • F15B2211/6309Electronic controllers using input signals representing a pressure the pressure being a pressure source supply pressure
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/60Circuit components or control therefor
    • F15B2211/63Electronic controllers
    • F15B2211/6303Electronic controllers using input signals
    • F15B2211/6346Electronic controllers using input signals representing a state of input means, e.g. joystick position
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/60Circuit components or control therefor
    • F15B2211/665Methods of control using electronic components
    • F15B2211/6652Control of the pressure source, e.g. control of the swash plate angle
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/60Circuit components or control therefor
    • F15B2211/665Methods of control using electronic components
    • F15B2211/6654Flow rate control
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/60Circuit components or control therefor
    • F15B2211/665Methods of control using electronic components
    • F15B2211/6655Power control, e.g. combined pressure and flow rate control

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • Mining & Mineral Resources (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Operation Control Of Excavators (AREA)
  • Fluid-Pressure Circuits (AREA)

Abstract

유압펌프의 토출 압력이 변경되는 경우에도 사용자에 의한 조작레버의 조작량에 비례하여 토출 유량을 제어하기 위한 유압펌프 유량 제어방법을 개시한다.
본 발명에 따른 건설기계용 가변용량형 유압펌프 유량 제어방법에 있어서,
사용자에 의한 조작레버의 조작량에 따라 유압펌프에 요구되는 유량을 연산하는 제1단계와,
토출 압력 검출센서에 의해 검출된 압력 대비 미리 설정된 유압펌프의 특정 마력 또는 토오크를 초과하지않는 최대 토출 가능한 유량을 연산하는 제2단계와,
제2단계에서 설정된 최대 토출 가능한 유량값 범위내에서 조작레버의 조작량에 따라 비례적으로 유압펌프의 토출 유량을 제어하는 제3단계를 포함하는 것을 특징으로 하는 유압펌프 유량 제어방법을 제공한다.
Disclosed is a hydraulic pump flow rate control method for controlling a discharge flow rate in proportion to an operation amount of an operation lever by a user even when a discharge pressure of a hydraulic pump is changed.
In the variable capacity hydraulic pump flow rate control method for a construction machine according to the present invention,
A first step of calculating a flow rate required for the hydraulic pump according to an operation amount of the operation lever by a user,
A second step of calculating a maximum dischargeable flow rate not exceeding a predetermined horsepower or torque of a predetermined hydraulic pump relative to a pressure detected by the discharge pressure detecting sensor,
And a third step of controlling the discharge flow rate of the hydraulic pump proportionally in accordance with the operation amount of the operation lever within the range of the maximum dischargeable flow amount set in the second step.

Description

건설기계용 가변용량형 유압펌프 유량 제어방법{METHOD OF CONTROLLING THE FLOW RATE OF A VARIABLE CAPACITY HYDRAULIC PUMP FOR A CONSTRUCTION APPARATUS}TECHNICAL FIELD [0001] The present invention relates to a variable capacity hydraulic pump for a construction machine,

본 발명은 사용자에 의한 조작레버(RCV) 조작에 따라 유압펌프의 토출 유량을 제어하는 건설기계용 가변용량형 유압펌프 유량 제어방법에 관한 것으로, 더욱 상세하게는 유압펌프의 토출 압력이 변경되는 경우에도 조작레버의 조작량에 비례하여 토출 유량을 제어할 수 있도록 한 유압펌프 유량 제어방법에 관한 것이다.BACKGROUND OF THE INVENTION 1. Field of the Invention [0001] The present invention relates to a variable capacity hydraulic pump flow control method for a construction machine, which controls a discharge flow rate of a hydraulic pump according to a user's operation of an operation lever (RCV) And more particularly, to a hydraulic pump flow rate control method capable of controlling a discharge flow rate in proportion to an operation amount of a steering lever.

도 1은 본 발명의 실시예에 의한 건설기계용 가변용량형 유압펌프 유량 제어방법이 적용되는 유압시스템을 나타내는 회로도이다.1 is a circuit diagram showing a hydraulic system to which a variable capacity hydraulic pump flow control method for a construction machine according to an embodiment of the present invention is applied.

굴삭기 등의 유압식 건설기계에 적용되는 유압시스템은,A hydraulic system applied to a hydraulic construction machine, such as an excavator,

사용자에 의한 조작량에 비례하여 조작신호를 출력하는 조작레버(RCV)(1)와,An operation lever (RCV) 1 for outputting an operation signal in proportion to an operation amount by a user,

엔진(2)에 연결되는 가변용량형 유압펌프(이하 "유압펌프" 라고 함)(3) 및 파일럿 펌프(4)와,A variable displacement hydraulic pump (hereinafter referred to as "hydraulic pump") 3 and a pilot pump 4 connected to the engine 2,

유압펌프(3)에 연결되는 유압 액츄에이터(미도시됨)와,A hydraulic actuator (not shown) connected to the hydraulic pump 3,

유압펌프(3)의 토출유로에 설치되고, 조작레버(1)로부터의 제어신호에 의해 절환시 유압 액츄에이터의 기동, 정지 및 방향전환을 제어하는 제어밸브(일 예로서 MCV용 스풀이 도시됨)(5)와,A control valve (for example, a spool for MCV is shown in the figure) which is provided in the discharge passage of the hydraulic pump 3 and which controls the starting, stopping and direction switching of the hydraulic actuator upon switching by a control signal from the operation lever 1, (5)

조작레버(1)의 조작에 따른 파일럿 신호압력을 검출하는 파일럿 압력 검출센서(6)와,A pilot pressure detecting sensor 6 for detecting the pilot signal pressure in accordance with the operation of the operating lever 1,

유압펌프(3)로부터 토출되는 작동유의 압력을 검출하는 토출 압력 검출센서(7)와,A discharge pressure detecting sensor 7 for detecting the pressure of the hydraulic oil discharged from the hydraulic pump 3,

파일럿 압력 검출센서(6) 및 토출 압력 검출센서(7)로부터의 검출신호에 따라 유압펌프(3)의 토출 유량을 제어하는 컨트롤러(8)를 포함한다.And a controller 8 for controlling the discharge flow rate of the hydraulic pump 3 in accordance with detection signals from the pilot pressure detection sensor 6 and the discharge pressure detection sensor 7. [

도면중 미 설명부호 9는 컨트롤러(8)로부터 입력되는 제어신호에 비례하는 2차 신호압력을 생성하여 유압펌프(3)의 사판 경전각을 제어하는 전자비례제어밸브이다.Reference numeral 9 in the drawings denotes an electronic proportional control valve for generating a secondary signal pressure proportional to a control signal input from the controller 8 to control the swash plate angular displacement of the hydraulic pump 3.

도 2는 종래 기술에 의한 유압펌프 유량 제어방법을 나타내는 흐름도이다.2 is a flowchart showing a hydraulic pump flow control method according to the prior art.

S100에서와 같이, 전술한 파일럿 압력 검출센서(6)에 의해 검출된 조작레버(1)의 조작량에 해당되는 검출신호가 컨트롤러(8)에 전송된다. 이로 인해 조작량 대비 유압펌프의 용적 관계를 이용하여 조작레버(1)의 조작량에 비례하여 유압펌프(3)에 요구되는 유량(Q1)을 연산한다.A detection signal corresponding to the operation amount of the operation lever 1 detected by the above-described pilot pressure detection sensor 6 is transmitted to the controller 8, as in S100. The flow rate Q1 required for the hydraulic pump 3 is calculated in proportion to the operation amount of the operation lever 1 by using the volume relation of the hydraulic pump to the operation amount.

S200에서와 같이, 전술한 토출 압력 검출센서(7)에 의해 검출된 유압펌프(3)의 토출 압력에 해당되는 검출신호가 컨트롤러(8)에 전송된다. 이로 인해 검출된 토출 압력대에서 특정 마력 또는 토오크를 초과하지않는 최대 토출 가능한 유량(Qavailable)을 계산공식을 통해 연산한다.A detection signal corresponding to the discharge pressure of the hydraulic pump 3 detected by the above discharge pressure detecting sensor 7 is transmitted to the controller 8 as in S200. The maximum dischargeable flow rate Qavailable which does not exceed a specific horsepower or torque in the detected discharge pressure range is calculated through the calculation formula.

S300에서와 같이, 조작레버(1)의 조작량에 비례하여 유압펌프(3)에 요구되는 유량(Q1)값과, 설정값을 초과하지않는 최대 토출 유량(Qavailable)값의 대소를 비교한다.The value of the flow rate Q1 required for the hydraulic pump 3 is compared with the magnitude of the maximum discharge flow rate Qavailable which does not exceed the set value in proportion to the operation amount of the operation lever 1 as in S300.

S400에서와 같이, 조작레버(1)의 조작에 따른 유량(Q1)값이 산출된 최대 토출 유량값(Qavailable)보다 작을 경우, 유압펌프(3)의 토출 유량은 조작레버(1)의 조작량에 비례하도록 제어된다.The flow rate of the hydraulic fluid to be supplied to the hydraulic pump 3 is controlled by the operation amount of the operation lever 1 so that the flow rate Q1 of the operation lever 1 is smaller than the calculated maximum discharge flow rate Qavailable .

S500에서와 같이, 조작레버(1)의 조작에 따른 유량(Q1)값이 산출된 최대 토출 유량값(Qavailable)보다 클 경우, 유압펌프(3)의 토출 유량은 설정값을 초과하지않는 최대 토출 유량(Qavailable)값으로 제어된다.If the value of the flow rate Q1 in accordance with the operation of the operating lever 1 is larger than the calculated maximum discharge flow rate value Qavailable as in S500, the discharge flow rate of the hydraulic pump 3 becomes the maximum discharge And is controlled to a Qavailable value.

전술한 유압펌프(3)의 토출 유량을 제어할 경우 아래와 같은 제어방법을 선택하게 된다.When the discharge flow rate of the hydraulic pump 3 is controlled, the following control method is selected.

첫째, 사용자에 의한 조작레버(1)의 조작량에 비례하여 유압펌프(3)의 토출 유량을 증가시키고, 조작레버(1)의 조작이 없는 경우에는 유압펌프(3)의 토출 유량을 최소화시켜 유압에너지 낭비를 줄일 수 있다.First, the discharge flow rate of the hydraulic pump 3 is increased in proportion to the operation amount of the operation lever 1 by the user, and when the operation lever 1 is not operated, the discharge flow rate of the hydraulic pump 3 is minimized, Energy waste can be reduced.

둘째, 유압펌프(3)의 토출 압력이 유압펌프(3)에 할당된 토오크 또는 마력을 초과하지않도록 미리 설정된 설정값을 초과할 경우에 설정값을 초과하는 만큼의 유량을 제한함에 따라(도 6에 도시됨), 첫번째 단계에서 결정된 유량을 줄이게 된다.Secondly, when the discharge pressure of the hydraulic pump 3 exceeds a predetermined set value so as not to exceed the torque or the horsepower allocated to the hydraulic pump 3, , The flow rate determined in the first step is reduced.

전술한 바와 같은 방법으로 유압펌프(3)의 토출 유량을 제어할 경우(유압펌프의 토출 유량을 기계적인 메카니즘 또는 전자 제어장치에 의해 토오크 또는 마력을 제한하는 경우를 말함), 토출 압력이 높은 경우에 사용자에 의한 조작레버(1)의 조작구간이 짧아지는 문제점이 발생된다. 특히 중량체의 물품을 들어올리는 인양작업에서와 같이, 정밀한 작업이 요구되는 경우에도 조작레버(1)의 조작구간이 짧아져 정밀한 조작성이 어렵게 된다.In the case where the discharge flow rate of the hydraulic pump 3 is controlled in the manner as described above (the discharge flow rate of the hydraulic pump is limited by the mechanical mechanism or the electronic control unit to limit the torque or the horsepower) The operating range of the operation lever 1 by the user is shortened. In particular, even when a precise operation is required, such as in a lifting operation of lifting an article of a weight, the operation section of the operation lever 1 is shortened, which makes precise operability difficult.

도 3은 토오크 또는 마력 제한시 토출 압력 대비 용적 또는 유량과의 상관 관계를 나타내는 그래프이다. 도 4 및 도 5는 종래 기술에 의한 유량 제어방법을 나타내는 그래프로서, 도 3에 도시된 유압펌프의 토출 압력이 P1과 P2인 지점에서 조작량 대비 유압펌프의 토출 용적 또는 유량의 상관 관계를 각각 나타내는 그래프이다.3 is a graph showing the relationship between the discharge pressure and the volume or flow rate when the torque or horsepower is limited. 4 and 5 are graphs showing a flow rate control method according to the related art, in which the relationship between the discharge volume or the flow rate of the hydraulic pump with respect to the operation amount at the discharge pressure P1 and P2 of the hydraulic pump shown in Fig. Graph.

도 4에서와 같이, 도 3에 도시된 유압펌프의 토출 압력이 P1인 지점에서는, 유압펌프의 토출 유량은 최대 유량 범위내에서 조작레버의 조작량에 비례하여 증가된다.As shown in Fig. 4, at the point where the discharge pressure of the hydraulic pump shown in Fig. 3 is P1, the discharge flow rate of the hydraulic pump is increased in proportion to the operation amount of the operation lever within the maximum flow rate range.

한편, 도 5에서와 같이, 도 3에 도시된 유압펌프의 토출 압력이 P2인 지점에서는 조작레버의 조작량이 증가되는 경우에도 유압펌프의 토출 유량은 더 이상 증가되지않게 된다. 이로 인해 조작레버의 조작구간(b)이 도 4에 도시된 조작레버의 조작구간(a)보다 상대적으로 짧아져 조작성이 떨어지는 문제점을 갖는다.On the other hand, as shown in FIG. 5, even when the operation amount of the operation lever is increased at the discharge pressure P2 of the hydraulic pump shown in FIG. 3, the discharge flow rate of the hydraulic pump is no longer increased. As a result, the operating range (b) of the operating lever becomes shorter than the operating range (a) of the operating lever shown in FIG. 4, thereby deteriorating operability.

도 6에서와 같이, 조작레버의 조작량이 50% 또는 75%일 경우에 유압펌프의 토출 유량이 토크 또는 마력을 제한하기 위해 설정된 설정값을 초과할 경우 초과분에 해당되는 유량은 제어선도에 의해 각각 제한된다. 이와 같이 유압펌트의 토출 압력에 의해 조작레버를 75% 조작할 경우가 조작레버를 50% 조작할 경우보다 조작구간이 짧게 되므로, 중량체의 인양작업시 정밀하게 조작할 수 없는 문제점을 갖는다.As shown in FIG. 6, when the operation amount of the operation lever is 50% or 75% and the discharge flow rate of the hydraulic pump exceeds the set value set for limiting the torque or horsepower, Is limited. In this way, when the operating lever is operated at 75% by the discharge pressure of the hydraulic pump, the operating range becomes shorter than when the operating lever is operated at 50%, so that there is a problem that the weight lever can not be precisely operated during the lifting operation.

본 발명의 실시예는, 유압펌프의 최대 토출 가능한 유량을 제한하는 설정값을 미리 정해놓은 상태에서 설정값 범위내에서 조작레버의 조작량에 비례적으로 토출 유량을 제어함에 따라, 고부하 작업영역에서도 조작레버의 조작구간을 확보하여 조작성을 향상시킬 수 있도록 한 건설기계용 가변용량형 유압펌프 유량 제어방법과 관련된다.In the embodiment of the present invention, the discharge flow rate is controlled in proportion to the operation amount of the operation lever within the set value range in a state in which the set value for limiting the maximum dischargeable flow rate of the hydraulic pump is controlled in advance, And a manipulation section of the lever is secured to improve the operability.

본 발명의 실시예에 의한 건설기계용 가변용량형 유압펌프 유량 제어방법은,A variable capacity hydraulic pump flow control method for a construction machine according to an embodiment of the present invention includes:

가변용량형 유압펌프와, 유압펌프에 연결되는 유압 액츄에이터와, 조작량에 비례하여 조작신호를 출력하는 조작레버와, 조작레버로부터의 제어신호에 의해 절환시 유압 액츄에이터의 기동, 정지 및 방향전환을 제어하는 제어밸브와, 조작레버의 조작량을 검출하는 검출수단과, 유압펌프로부터 토출되는 작동유의 압력을 검출하는 토출 압력 검출센서와, 파일럿 압력 검출센서 및 토출 압력 검출센서로부터의 검출신호에 따라 유압펌프의 토출 유량을 제어하는 컨트롤러를 포함하는 건설기계용 유압펌프 유량 제어방법에 있어서,A variable capacity type hydraulic pump, a hydraulic actuator connected to the hydraulic pump, an operation lever for outputting an operation signal proportional to the operation amount, and a control device for controlling the start, stop and direction switching of the hydraulic actuator upon switching by a control signal from the operation lever A discharge pressure detecting sensor for detecting a pressure of the hydraulic fluid discharged from the hydraulic pump; and a hydraulic pressure sensor for detecting a hydraulic pressure of the hydraulic pump in accordance with a detection signal from the pilot pressure detecting sensor and the discharge pressure detecting sensor, And a controller for controlling a discharge flow rate of the hydraulic pump,

사용자에 의한 조작레버의 조작량에 따라 유압펌프에 요구되는 유량을 연산하는 제1단계와,A first step of calculating a flow rate required for the hydraulic pump according to an operation amount of the operation lever by a user,

토출 압력 검출센서에 의해 검출된 압력 대비 미리 설정된 유압펌프의 특정 마력 또는 토오크를 초과하지않는 최대 토출 가능한 유량을 연산하는 제2단계와,A second step of calculating a maximum dischargeable flow rate not exceeding a predetermined horsepower or torque of a predetermined hydraulic pump relative to a pressure detected by the discharge pressure detecting sensor,

제2단계에서 설정된 최대 토출 가능한 유량값 범위내에서 조작레버의 조작량에 따라 비례적으로 유압펌프의 토출 유량을 제어하는 제3단계를 포함한다.And a third step of controlling the discharge flow rate of the hydraulic pump proportionally in accordance with the operation amount of the operation lever within the range of the maximum dischargeable flow amount set in the second step.

더욱 바람직한 실시예에 의하면, 전술한 제3단계에서 조작레버가 무부하에서 최대의 펌프 유량을 요구하는 조작량일 경우, 미리 설정된 압력 대비 유압펌프의 최대 토출 가능한 유량이 되도록 연산한다.According to a further preferred embodiment, in the third step, when the operating lever is the manipulated variable requiring the maximum pump flow rate at no load, it is calculated to be the maximum dischargeable flow rate of the preset pressure-to-pressure hydraulic pump.

전술한 무부하에서의 조작레버 조작량에 따라 유압펌프에 요구되는 토출 유량을 백분율로 산출하여, 미리 설정된 압력 대비 유압펌프의 최대 토출 가능한 유량에 산출된 백분율을 곱하여 유압펌프의 토출 유량을 연산한다.The discharge flow rate required for the hydraulic pump is calculated as a percentage in accordance with the operation amount of the operation lever at the no load, and the discharge flow rate of the hydraulic pump is calculated by multiplying the calculated maximum dischargeable flow rate of the hydraulic pressure pump by the predetermined percentage.

전술한 바와 같이 구성되는 본 발명의 실시예에 의한 건설기계용 가변용량형 유압펌프 유량 제어방법은 아래와 같은 이점을 갖는다.The variable capacity hydraulic pump flow control method for a construction machine according to an embodiment of the present invention configured as described above has the following advantages.

유압펌프의 최대 토출 가능한 유량을 제한하는 설정값을 미리 정해놓은 상태에서 설정값 범위내에서 조작레버의 조작량에 비례적으로 토출 유량을 제어함에 따라, 중량체를 인양하는 작업시에도 조작구간을 확보하여 정밀한 조작으로 인한 조작성 및 안전성을 향상시킬 수 있다.By controlling the discharge flow rate proportional to the operation amount of the operation lever within the set value range in a state in which the set value for limiting the maximum dischargeable flow rate of the hydraulic pump is predetermined, the operation section is secured even when lifting the weight Thus, operability and safety due to precise operation can be improved.

또한, 고부하가 발생되는 작업시 스풀(MCV의 스풀을 말함)의 개구면적이 넓은 영역에서 유량이 토출 되므로 압력 손실이 감소되어 연비를 향상시킬 수 있다.Further, since the flow rate is discharged in a region where the opening area of the spool (referred to as the spool of the MCV) is large at the time of operation in which a high load is generated, the pressure loss is reduced and the fuel consumption can be improved.

도 1은 본 발명의 실시예에 의한 건설기계용 가변용량형 유압펌프 유량 제어방법이 적용되는 유압시스템을 나타내는 회로도,
도 2는 종래 기술에 의한 유압펌프 유량 제어방법을 나타내는 흐름도,
도 3 내지 6은 종래 기술에 의한 유압펌프 유량 제어를 설명하기 위한 그래프,
도 7 내지 8은 본 발명의 실시예에 의한 유압펌프 유량 제어를 설명하기 위한 그래프,
도 9는 본 발명의 실시예에 의한 건설기계용 가변용량형 유압펌프 유량 제어방법을 나타내는 흐름도이다.
〈도면의 주요 부분에 대한 참조 부호의 설명〉
1; 조작레버(RCV)
2; 엔진
3; 가변용량형 유압펌프
4; 파일럿 펌프
5; 제어밸브(MCV)
6; 파일럿 압력 검출센서
7; 토출 압력 검출센서
8; 컨트롤러
9; 전자비례제어밸브
1 is a circuit diagram showing a hydraulic system to which a variable capacity hydraulic pump flow control method for a construction machine according to an embodiment of the present invention is applied;
2 is a flowchart showing a hydraulic pump flow control method according to the prior art,
3 to 6 are graphs for explaining the flow control of the hydraulic pump according to the prior art,
7 to 8 are graphs for explaining the flow control of the hydraulic pump according to the embodiment of the present invention,
9 is a flowchart showing a variable capacity hydraulic pump flow control method for a construction machine according to an embodiment of the present invention.
DESCRIPTION OF THE REFERENCE NUMERALS to main parts of the drawings
One; Operation lever (RCV)
2; engine
3; Variable displacement hydraulic pump
4; Pilot pump
5; Control valve (MCV)
6; Pilot pressure detection sensor
7; The discharge pressure detection sensor
8; controller
9; Electronic proportional control valve

이하, 본 발명의 바람직한 실시예를 첨부된 도면을 참조하여 설명하되, 이는 본 발명이 속하는 기술분야에서 통상의 지식을 가진 자가 발명을 용이하게 실시할 수 있을 정도로 상세하게 설명하기 위한 것이지 이로 인해 본 발명의 기술적인 사상 및 범주가 한정되는 것을 의미하지는 않는 것이다.DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT Hereinafter, a preferred embodiment of the present invention will be described with reference to the accompanying drawings, which are intended to illustrate the present invention in a manner that allows a person skilled in the art to easily carry out the invention. And does not mean that the technical idea and scope of the invention are limited.

도 7 내지 도 9에 도시된 본 발명의 실시예에 의한 건설기계용 가변용량형 유압펌프 유량 제어방법은,In the variable capacity hydraulic pump flow control method for a construction machine according to the embodiment of the present invention shown in FIGS. 7 to 9,

사용자에 의한 조작량에 비례하여 조작신호를 출력하는 조작레버(RCV)(1)와,An operation lever (RCV) 1 for outputting an operation signal in proportion to an operation amount by a user,

엔진(2)에 연결되는 가변용량형 유압펌프(이하 "유압펌프" 라고함)(3) 및 파일럿 펌프(4)와,A variable displacement hydraulic pump (hereinafter referred to as "hydraulic pump") 3 and a pilot pump 4 connected to the engine 2,

유압펌프(3)에 연결되는 유압 액츄에이터(미도시됨)와,A hydraulic actuator (not shown) connected to the hydraulic pump 3,

조작레버(1)로부터의 제어신호에 의해 절환시 유압 액츄에이터(유압실린더 등을 말함)의 기동, 정지 및 방향전환을 제어하는 제어밸브(5)(일 예로서 MCV용 스풀이 사용됨)와,A control valve 5 (for example, a spool for MCV is used) for controlling the start, stop and direction switching of a hydraulic actuator (referred to as a hydraulic cylinder or the like) upon switching by a control signal from the operation lever 1,

조작레버(1)의 조작량을 검출하는 검출수단(일 예로서 파일럿 압력 검출센서(6)를 말함)과,A detecting means (e.g., a pilot pressure detecting sensor 6 as one example) for detecting an operation amount of the operating lever 1,

유압펌프(3)로부터 토출되는 작동유의 압력을 검출하는 토출 압력 검출센서(7)와,A discharge pressure detecting sensor 7 for detecting the pressure of the hydraulic oil discharged from the hydraulic pump 3,

파일럿 압력 검출센서(6) 및 토출 압력 검출센서(7)로부터의 검출신호에 따라 유압펌프(3)의 토출 유량을 제어하는 컨트롤러(8)를 포함하는 건설기계용 유압펌프 유량 제어방법에 있어서,And a controller (8) for controlling the discharge flow rate of the hydraulic pump (3) in accordance with detection signals from the pilot pressure detection sensor (6) and the discharge pressure detection sensor (7)

사용자에 의한 조작레버(1)의 조작량에 따라 유압펌프(3)에 요구되는 유량(Q1)을 연산하는 제1단계(S1000)와,A first step S1000 for calculating a flow rate Q1 required of the hydraulic pump 3 in accordance with the operation amount of the operation lever 1 by the user,

토출 압력 검출센서(7)에 의해 검출된 압력 대비 미리 설정된 유압펌프(3)의 특정 마력 또는 토오크를 초과하지않는 최대 토출 가능한 유량(Qmax)을 연산하는 제2단계(S2000)와,A second step S2000 of calculating a maximum dischargeable flow rate Qmax that does not exceed a predetermined horsepower or torque of the predetermined hydraulic pump 3 relative to the pressure detected by the discharge pressure detecting sensor 7,

제2단계(S2000)에서 설정된 최대 토출 가능한 유량(Qmax)값 범위내에서 조작레버(1)의 조작량에 따라 비례적으로 유압펌프(3)의 토출 유량을 제어하는 제3단계(S3000)를 포함한다.A third step S3000 of controlling the discharge flow rate of the hydraulic pump 3 proportionally in accordance with the operation amount of the operation lever 1 within the range of the maximum dischargeable flow amount Qmax set in the second step S2000 do.

이때, 전술한 제3단계(S3000)에서 조작레버(1)가 무부하에서 최대의 펌프 유량을 요구하는 조작량일 경우, 미리 설정된 압력 대비 유압펌프(3)의 최대 토출 가능한 유량(Qmax)이 되도록 연산한다.At this time, when the operating lever 1 is the manipulated variable requiring the maximum pump flow rate at no load in the third step S3000 described above, it is calculated so as to be the maximum dischargeable flow rate Qmax of the preset pressure-to-pressure hydraulic pump 3 do.

한편, 무부하에서의 조작레버(1) 조작량에 따라 유압펌프(3)에 요구되는 토출 유량(Q1)을 백분율로 산출하여, 미리 설정된 압력 대비 유압펌프(3)의 최대 토출 가능한 유량(Qmax)에 산출된 백분율(Q1/Qmax)을 곱하여 유압펌프(3)의 토출 유량을 연산한다.On the other hand, the discharge flow rate Q1 required for the hydraulic pump 3 is calculated as a percentage based on the operation amount of the operation lever 1 at no load, and the flow rate Qmax of the maximum dischargeable flow rate Qmax of the hydraulic pressure pump 3 And the discharge flow rate of the hydraulic pump 3 is calculated by multiplying the calculated percentage Q1 / Qmax.

이하에서, 본 발명의 실시예에 의한 건설기계용 가변용량형 유압펌프 유량 제어방법의 사용예를 첨부된 도면을 참조하여 상세하게 설명한다.BEST MODE FOR CARRYING OUT THE INVENTION Hereinafter, the use of a variable capacity hydraulic pump flow control method for a construction machine according to an embodiment of the present invention will be described in detail with reference to the accompanying drawings.

도 9에 도시된 S1000에서와 같이, 전술한 유압펌프(3)의 토출 유량을 제어하기 위해 사용자에 의해 조작레버(1)를 조작할 경우 조작신호가 파일럿 압력 검출센서(6)에 의해 검출된다. 조작레버(1)의 조작량 검출신호가 컨트롤러(8)에 전송되므로, 조작량 대비 유압펌프의 용적 관계를 이용하여 조작레버(1)의 조작량에 따라 유압펌프(3)에 요구되는 유량(Q1)을 연산한다.9, an operation signal is detected by the pilot pressure detection sensor 6 when the operation lever 1 is operated by the user to control the discharge flow rate of the hydraulic pump 3 described above . The amount of flow Q1 required for the hydraulic pump 3 is set to be smaller than the flow amount Q1 required for the operation lever 1 according to the operation amount of the operation lever 1 by using the volume relation of the hydraulic pump to the operation amount .

S2000에서와 같이, 전술한 토출 압력 검출센서(7)에 의해 검출된 유압펌프(3)의 검출신호가 컨트롤러(8)에 전송된다. 이로 인해 검출된 토출 압력대에서 유압펌프(3)의 특정 마력 또는 토오크를 초과하지않는 최대 토출 가능한 유량(Qavailable)을 계산공식을 통해 연산한다.The detection signal of the hydraulic pump 3 detected by the above-described discharge pressure detecting sensor 7 is transmitted to the controller 8, as in S2000. The maximum dischargeable flow rate Qavailable which does not exceed the specific horsepower or torque of the hydraulic pump 3 at the detected discharge pressure range is calculated through the calculation formula.

S3000에서와 같이, 제2단계(S2000)에서 설정된 최대 토출 가능한 유량(Qmax)값내에서 조작레버(1)의 조작량에 따라 비례적으로 유압펌프(3)의 토출 유량을 제어한다. 이때 조작레버(1)의 조작량이 최대일 경우 미리 설정된 압력 대비 유압펌프(3)의 최대 토출 가능한 유량(Qmax)이 되도록 연산한다.The discharge flow rate of the hydraulic pump 3 is proportionally controlled in accordance with the operation amount of the operation lever 1 within the maximum dischargeable flow rate Qmax set in the second step S2000 as in S3000. At this time, when the operation amount of the operation lever 1 is the maximum, it is calculated so as to be the maximum dischargeable flow rate Qmax of the hydraulic pump 3 relative to the preset pressure.

한편, 무부하에서의 조작레버(1) 조작량에 따라 유압펌프(3)에 요구되는 토출 유량(Q1)을 백분율로 산출하여, 미리 설정된 압력 대비 유압펌프(3)의 최대 토출 가능한 유량(Qmax)에 산출된 백분율(Q1/Qmax)을 곱하여 유압펌프(3)의 토출 유량을 연산한다. 즉 유압펌프(3)의 최대 토출 가능한 유량(Q)은 아래의 수식에 의해 연산된다. Q = Qavailable × (Q1/Qmax)이다.On the other hand, the discharge flow rate Q1 required for the hydraulic pump 3 is calculated as a percentage based on the operation amount of the operation lever 1 at no load, and the flow rate Qmax of the maximum dischargeable flow rate Qmax of the hydraulic pressure pump 3 And the discharge flow rate of the hydraulic pump 3 is calculated by multiplying the calculated percentage Q1 / Qmax. The maximum dischargeable flow rate Q of the hydraulic pump 3 is calculated by the following equation. Q = Qavailable x (Q1 / Qmax).

이와 같이 유압펌프에 할당된 토오크 또는 마력을 초과하지않도록 설정된 압력 대비 최대 토출 가능한 유량을 제한하는 설정값을 정해놓은 상태에서, 그 값을 초과하는 않는 범위내에서 조작레버의 조작량에 비례하도록 유압펌프의 토출 유량을 제어할 수 있다.In this way, in a state in which a set value for limiting the maximum dischargeable flow rate relative to the pressure set so as not to exceed the torque or the horsepower allocated to the hydraulic pump is set, the hydraulic pump Can be controlled.

즉, 도 8에서와 같이 미리 설정된 유압펌프의 최대 토출 가능한 유량 범위값을 나타내는 곡선과 조작레버의 조작량 75%, 50%, 25% 각각을 나타내는 곡선으로부터, 미리 설정된 유압펌프의 최대 토출 가능한 유량값 내에서 조작레버의 조작량에 각각 비례하도록 유압펌프의 토출 유량을 제어할 수 있음을 확인할 수 있다.That is, as shown in FIG. 8, a curve representing the maximum dischargeable flow rate range value of the hydraulic pump set in advance and a curve representing each of the manipulated variables 75%, 50%, and 25% It can be confirmed that the discharge flow rate of the hydraulic pump can be controlled so as to be proportional to the manipulated variable of the operating lever.

도 7에서와 같이, 도 3에 도시된 유압펌프의 토출 압력이 P1인 지점에서는 유압펌프의 토출 유량은 최대 유량 범위내에서 조작레버의 조작량에 비례하여 증가된다(도 7에 점섬으로 도시됨). 한편 도 3에 도시된 유압펌프의 토출 압력이 P2인 지점에서는 조작레버의 조작구간(c)이 도 5에 도시된 종래 기술의 조작레버의 조작구간(b)보다 상대적으로 긴 것을 확인할 수 있다(도 7에 실선으로 도시됨).As shown in Fig. 7, at the point where the discharge pressure of the hydraulic pump shown in Fig. 3 is P1, the discharge flow rate of the hydraulic pump is increased in proportion to the operation amount of the operation lever within the maximum flow rate range (indicated by a dotted line in Fig. 7) . On the other hand, it can be confirmed that the operating range c of the operating lever is relatively longer than the operating range b of the operating lever of the prior art shown in Fig. 5 at the point where the discharge pressure of the hydraulic pump shown in Fig. 3 is P2 Indicated by solid lines in Fig. 7).

이로 인해 고부하가 발생되는 작업영역에서도 조작구간이 길어지며, 특히 중량체의 인양작업에서는 더욱 정밀한 조작성 및 안전성이 확보된다. 또한 작업시 부하가 발생되는 경우 스풀의 개구면적이 넓어진 상태에서 유량을 토출시키므로 압력손실을 줄여 연비를 향상시킬 수 있다.As a result, the operation section is lengthened even in a work area in which a high load is generated, and more precise operability and safety are ensured especially in a lifting operation of a heavy body. In addition, when a load is generated during operation, since the flow rate is discharged in a state in which the opening area of the spool is widened, the fuel consumption can be improved by reducing the pressure loss.

산업상 이용가능성Industrial availability

전술한 바와 같은 본 발명의 실시예에 의한 건설기계용 가변용량형 유압펌프 유량 제어방법에 의하면, 유압펌프의 최대 토출 가능한 유량을 제한하는 설정값을 미리 정해놓은 상태에서 설정값 범위내에서 조작레버의 조작량에 비례적으로 토출 유량을 제어함에 따라, 중량체를 인양하는 작업시에 조작구간을 확보하여 조작성을 향상시킬 수 있다. 고부하가 발생되는 작업시 스풀의 개구면적이 넓은 영역에서 유량이 토출 되므로 압력 손실을 줄일 수 있다.According to the variable capacity hydraulic pump flow rate control method for a construction machine according to the embodiment of the present invention as described above, in a state in which a set value for limiting the maximum dischargeable flow rate of the hydraulic pump is predetermined, The operation flow rate is controlled proportionally to the operation amount of the weight member, so that the operation period can be ensured at the time of lifting the weight member, so that the operability can be improved. The pressure loss can be reduced because the flow rate is discharged in a region where the opening area of the spool is large in a work in which a high load is generated.

Claims (3)

가변용량형 유압펌프와, 유압펌프에 연결되는 유압 액츄에이터와,
조작량에 비례하여 조작신호를 출력하는 조작레버와,
조작레버로부터의 제어신호에 의해 절환시 유압 액츄에이터의 기동, 정지 및 방향전환을 제어하는 제어밸브와, 조작레버의 조작량을 검출하는 검출수단과, 유압펌프로부터 토출되는 작동유의 압력을 검출하는 토출 압력 검출센서와, 파일럿 압력 검출센서 및 토출 압력 검출센서로부터의 검출신호에 따라 유압펌프의 토출 유량을 제어하는 컨트롤러를 포함하는 건설기계용 유압펌프 유량 제어방법에 있어서:
사용자에 의한 조작레버의 조작량에 따라 상기 유압펌프에 요구되는 유량을 연산하는 제1단계와,
상기 토출 압력 검출센서에 의해 검출된 압력 대비 미리 설정된 상기 유압펌프의 특정 마력 또는 토오크를 초과하지 않는 최대 토출 가능한 유량을 연산하는 제2단계와,
상기 제2단계에서 설정된 최대 토출 가능한 유량값 범위내에서 상기 조작레버의 조작량에 따라 비례적으로 유압펌프의 토출 유량을 제어하는 제3단계를 포함하고,
상기 제3단계에서, 상기 조작레버의 조작량이 무부하에서 최대의 펌프 유량을 요구하는 조작량일 경우, 미리 설정된 압력 대비 유압펌프의 최대 토출 가능한 유량이 되도록 연산하고,
무부하에서의 조작레버 조작량에 따라 유압펌프에 요구되는 토출 유량을 백분율로 산출하여, 미리 설정된 압력 대비 유압펌프의 최대 토출 가능한 유량에 산출된 백분율을 곱하여 유압펌프의 토출 유량을 연산하는 것을 특징으로 하는 건설기계용 가변용량형 유압펌프 유량 제어방법.
A variable displacement hydraulic pump, a hydraulic actuator connected to the hydraulic pump,
An operation lever for outputting an operation signal in proportion to the operation amount,
A control valve for controlling the start, stop and direction switching of the hydraulic actuator upon switching by a control signal from the operation lever; detection means for detecting an operation amount of the operation lever; And a controller for controlling a discharge flow rate of the hydraulic pump in accordance with a detection signal from the pilot pressure detection sensor and the discharge pressure detection sensor, the method comprising:
A first step of calculating a flow rate required for the hydraulic pump according to an operation amount of an operation lever by a user,
A second step of calculating a maximum dischargeable flow rate that does not exceed a predetermined horsepower or torque of the hydraulic pump set in advance against a pressure detected by the discharge pressure detecting sensor;
And a third step of controlling the discharge flow rate of the hydraulic pump proportionally in accordance with the operation amount of the operation lever within a range of the maximum dischargeable flow amount set in the second step,
Wherein in the third step, when the manipulated variable of the operating lever is the manipulated variable demanding the maximum pump flow rate at no load, it is calculated so as to be the maximum dischargeable flow rate of the preset pressure-
The discharge flow rate of the hydraulic pump is calculated by calculating the discharge flow rate required for the hydraulic pump in accordance with the operation amount of the operation lever at no load and multiplying the calculated discharge rate by the percentage of the maximum dischargeable flow rate of the hydraulic pressure pump relative to the preset pressure. Variable Capacity Hydraulic Pump Flow Control Method for Construction Machinery.
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